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Assessing Cellular Target Engagement by SHP2 PTPN11 Phosphatase Inhibitors
Published on: July 17, 2020
RETRACTED: Protein Tyrosine Phosphatase Non-Receptor 11 (PTPN11/Shp2) as a Driver Oncogene and a Novel Therapeutic
Cathy E Richards1, Yasir Y Elamin1,2, Aoife Carr1
1Medical Oncology Group, Department of Molecular Medicine, Royal College of Surgeons in Ireland, D09 YD60 Dublin, Ireland.
Abstract:
PTPN11 encodes the SHP2 protein tyrosine phosphatase that activates the mitogen-activated protein kinase (MAPK) pathway upstream of KRAS and MEK. PTPN11/Shp2 somatic mutations occur frequently in Juvenile myelomonocytic leukaemia (JMML); however, the role of mutated PTPN11 in lung cancer tumourigenesis and its utility as a therapeutic target has not been fully addressed. We applied mass-spectrometry-based genotyping to DNA extracted from the tumour and matched the normal tissue of 356 NSCLC patients (98 adenocarcinomas (LUAD) and 258 squamous cell carcinomas (LUSC)). Further, PTPN11 mutation cases were identified in additional cohorts, including TCGA, Broad, and MD Anderson datasets and the COSMIC database. PTPN11 constructs harbouring PTPN11 E76A, A72D and C459S mutations were stably expressed in IL-3 dependent BaF3 cells and NSCLC cell lines (NCI-H1703, NCI-H157, NCI-H1299). The MAPK and PI3K pathway activation was evaluated using Western blotting. PTPN11/Shp2 phosphatase activity was measured in whole-cell protein lysates using an Shp2 assay kit. The Shp2 inhibitor (SHPi) was assessed both in vitro and in vivo in a PTPN11-mutated cell line for improved responses to MAPK and PI3K targeting therapies. Somatic PTPN11 hotspot mutations occurred in 4/98 (4.1%) adenocarcinomas and 7/258 (2.7%) squamous cells of 356 NSCLC patients. Additional 26 PTPN11 hotspot mutations occurred in 23 and 3 adenocarcinomas and squamous cell carcinoma, respectively, across the additional cohorts. Mutant PTPN11 significantly increased the IL-3 independent survival of Ba/F3 cells compared to wildtype PTPN11 (p < 0.0001). Ba/F3, NCI-H1703, and NCI-H157 cells expressing mutant PTPN11 exhibited increased PTPN11/Shp2 phosphatase activity and phospho-ERK1/2 levels compared to cells expressing wildtype PTPN11. The transduction of the PTPN11 inactivating mutation C459S into NSCLC cell lines led to decreased phospho-ERK, as well as decreased phospho-AKT in the PTPN11-mutated NCI-H661 cell line. NCI-H661 cells (PTPN11-mutated, KRAS-wild type) were significantly more sensitive to growth inhibition by the PI3K inhibitor copanlisib (IC50: 13.9 ± 4.7 nM) compared to NCI-H1703 (PTPN11/KRAS-wild type) cells (IC50: >10,000 nM). The SHP2 inhibitor, in combination with the PI3K targeting therapy copanlisib, showed no significant difference in tumour development in vivo; however, this significantly prevented MAPK pathway induction in vitro (p < 0.0001). PTPN11/Shp2 demonstrated the in vitro features of a driver oncogene and could potentially sensitize NSCLC cells to PI3K inhibition and inhibit MAPK pathway activation following PI3K pathway targeting.
Insights
Mutations in PTPN11 (encoding SHP2) were found in non-small cell lung cancer (NSCLC), driving tumor growth. Targeting SHP2 may sensitize NSCLC to PI3K inhibitors, offering a potential new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- PTPN11 encodes SHP2, a phosphatase activating the MAPK pathway upstream of KRAS.
- Somatic PTPN11 mutations are common in Juvenile myelomonocytic leukaemia (JMML).
- The role of mutated PTPN11 in lung cancer and its therapeutic potential are underexplored.
Purpose of the Study:
- To investigate the frequency and role of PTPN11 mutations in non-small cell lung cancer (NSCLC).
- To evaluate the therapeutic utility of targeting PTPN11/SHP2 in NSCLC.
- To assess the combined effect of SHP2 inhibition and PI3K targeting therapy.
Main Methods:
- Mass-spectrometry-based genotyping of tumor and normal tissues from 356 NSCLC patients.
- Analysis of additional NSCLC cohorts (TCGA, Broad, MD Anderson, COSMIC).
- Functional studies in BaF3 and NSCLC cell lines expressing wildtype or mutant PTPN11.
- Evaluation of MAPK and PI3K pathway activation via Western blotting.
- Measurement of SHP2 phosphatase activity.
- In vitro and in vivo assessment of a SHP2 inhibitor (SHPi) in combination with PI3K inhibitor copanlisib.
Main Results:
- Somatic PTPN11 hotspot mutations occurred in 4.1% of adenocarcinomas and 2.7% of squamous cell carcinomas.
- Mutant PTPN11 increased IL-3 independent survival and MAPK/ERK activation in cell lines.
- NSCLC cells with PTPN11 mutations showed increased sensitivity to PI3K inhibitor copanlisib.
- SHPi combined with copanlisib inhibited MAPK pathway induction in vitro but showed no significant difference in vivo tumor development.
Conclusions:
- Mutant PTPN11 acts as a driver oncogene in NSCLC, activating MAPK and potentially sensitizing cells to PI3K inhibition.
- Targeting SHP2 may enhance the efficacy of PI3K-targeting therapies in specific NSCLC subsets.
- Further research is warranted to explore the therapeutic potential of SHP2 inhibitors in NSCLC.
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